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A Hybrid Wave Front Correction Method for Sensor-less Adaptive Optics in Free Space Optical Communication

机译:自由空间光通信中无传感器自适应光学的混合波前校正方法

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Sensor-less adaptive optics (AO) technology is an effective method to compensate the wave front distortion caused by atmospheric turbulence in free space optical communication (FSOC) system. In general, a lot of iterations are required to update the control voltage vector step by step for the stochastic parallel gradient descent (SPGD) algorithm which is a conventional and often considered model-free algorithm. The newly developed model-based algorithms have certain constraints and difficulties for the construction of the models. Therefore, in order to develop a rapid wave front distortion compensation algorithm with better performance, we present a hybrid method which combines a model-based algorithm presented by Martin J. Booth and SPGD algorithm to correct the low-order aberration and high-order aberration respectively. Simulations show that this hybrid method can compensate wave front aberrations with higher convergence speed than that of SPGD algorithm and finally reach higher Strehl ratio (SR) and better bit error rate (BER) with same iterations, particularly under strong turbulence. This result means that our hybrid method can improve coupling efficiency and quality of FSOC system.
机译:无传感器自适应光学(AO)技术是一种补偿自由空间光通信(FSOC)系统中由大气湍流引起的波前畸变的有效方法。通常,对于随机并行梯度下降(SPGD)算法,需要逐步进行大量迭代来逐步更新控制电压矢量,该算法是一种常规且通常被视为无模型的算法。新开发的基于模型的算法对于模型的构建具有一定的约束和困难。因此,为了开发一种性能更好的快速波前畸变补偿算法,我们提出了一种混合方法,该方法结合了Martin J. Booth提出的基于模型的算法和SPGD算法来校正低阶像差和高阶像差。分别。仿真结果表明,该混合方法能够以比SPGD算法更高的收敛速度来补偿波前像差,并且在相同的迭代下,特别是在强湍流条件下,最终可以达到更高的斯特雷尔比(SR)和更好的误码率(BER)。这个结果意味着我们的混合方法可以提高FSOC系统的耦合效率和质量。

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